Yu Huitao, Chen Can, Sun Jinxu, Zhang Heng, Feng Yiyu, Qin Mengmeng, Feng Wei
School of Materials Science and Engineering and Tianjin Key Laboratory of Composite and Functional Materials, Tianjin University, Tianjin, 300350, People's Republic of China.
Key Laboratory of Materials Processing and Mold, Ministry of Education, Zhengzhou University, Zhengzhou, 450002, People's Republic of China.
Nanomicro Lett. 2022 Jun 15;14(1):135. doi: 10.1007/s40820-022-00882-w.
Composites that can rapidly self-healing their structure and function at room temperature have broad application prospects. However, in view of the complexity of composite structure and composition, its self-heal is facing challenges. In this article, supramolecular effect is proposed to repair the multistage structure, mechanical and thermal properties of composite materials. A stiff and tough supramolecular frameworks of 2-[[(butylamino)carbonyl]oxy]ethyl ester (PBA)-polydimethylsiloxane (PDMS) were established using a chain extender with double amide bonds in a side chain to extend prepolymers through copolymerization. Then, by introducing the copolymer into a folded graphene film (FGf), a highly thermally conductive composite of PBA-PDMS/FGf with self-healing capacity was fabricated. The ratio of crosslinking and hydrogen bonding was optimized to ensure that PBA-PDMS could completely self-heal at room temperature in 10 min. Additionally, PBA-PDMS/FGf exhibits a high tensile strength of 2.23 ± 0.15 MPa at break and high thermal conductivity of 13 ± 0.2 W m K; of which the self-healing efficiencies were 100% and 98.65% at room temperature for tensile strength and thermal conductivity, respectively. The excellent self-healing performance comes from the efficient supramolecular interaction between polymer molecules, as well as polymer molecule and graphene. This kind of thermal conductive self-healing composite has important application prospects in the heat dissipation field of next generation electronic devices in the future.
能够在室温下快速自我修复其结构和功能的复合材料具有广阔的应用前景。然而,鉴于复合材料结构和组成的复杂性,其自我修复面临挑战。本文提出利用超分子效应修复复合材料的多级结构、力学和热性能。使用侧链带有双酰胺键的扩链剂通过共聚反应扩链预聚物,建立了2-[[(丁基氨基)羰基]氧基]乙酯(PBA)-聚二甲基硅氧烷(PDMS)的刚性且坚韧的超分子框架。然后,通过将该共聚物引入折叠石墨烯薄膜(FGf)中,制备了具有自修复能力的高导热复合材料PBA-PDMS/FGf。优化交联和氢键的比例,以确保PBA-PDMS在室温下10分钟内能够完全自我修复。此外,PBA-PDMS/FGf的断裂拉伸强度高达2.23±0.15MPa,热导率高达13±0.2W m K;其中室温下拉伸强度和热导率的自修复效率分别为100%和98.65%。优异的自修复性能源于聚合物分子之间以及聚合物分子与石墨烯之间高效的超分子相互作用。这种导热自修复复合材料在未来下一代电子器件的散热领域具有重要的应用前景。